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Effect of Salt on the Ordinary-Extraordinary Transition in Solutions of Charged Macromolecules

机译:盐对充电大分子溶液中普通非凡转型的影响

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Using dynamic light scattering technique, we address the role of added salt at higher concentrations on the "ordinary-extraordinary" transition in solutions of charged macromolecules. The "ordinary" behavior has previously been associated with a "fast" diffusion coefficient which is independent of salt concentration C-s, and polymer concentration C-p if the ratio C-p/C-s is above a threshold value. The "extraordinary" transition is associated with formation of aggregates, with a "slow" diffusion coefficient, formed from similarly charged macromolecules. By investigating aqueous solutions of sodium poly(styrenesulfonate) and sodium chloride with variations in C-p, C-s, and polymer molecular weight, M-w, we report the emergence of a new diffusive "fast" relaxation mode at higher values of C-p, C-s, and M-w, in addition to the previously known "fast" and "slow" relaxation modes. Furthermore, we find that M-w plays a crucial role on the collective dynamics of polyelectrolyte solutions with salt, instead of just the C-p/C-s ratio as previously postulated. As M-w is progressively decreased, the salty solution exhibits dynamical transitions from three modes to two modes and then to one mode of relaxation. The emergence of the new fast mode and the dynamical transitions are in marked departure from the general premise of the ordinary-extraordinary transition developed over several decades. In an effort to rationalize our experimental findings we present a theory for the collective dynamics of polyelectrolyte solutions with salt by addressing the coupling between the relaxations of polyelectrolyte chains, counterions from the polymer and added salt, and co-ions from the salt. The predictions are in qualitative agreement with experimental findings. The present combined work of experiments and theory forms the basis for accurately characterizing dynamics of charged macromolecules in salty solutions, which are ubiquitous in biological systems and polyelectrolyte-based technologies.
机译:采用动态光散射技术,我们解决了加入盐在带电大分子溶液中“普通非凡”过渡的较高浓度的作用。 “普通”行为先前已经与“快速”扩散系数相关联,其与盐浓度C-S无关,并且如果比率C-P / C-S高于阈值,则聚合物浓度C-P。 “非凡”转变与聚集体的形成有关,其具有由类似电荷的大分子形成的“慢”扩散系数。通过研究具有CP,Cs和聚合物分子量的变化的多钠(苯乙烯磺酸盐)和氯化钠水溶液,我们在CP,CS和MW的较高值下报告了新的扩散“快”弛豫模式的出现除了先前已知的“快”和“慢速”放松模式之外。此外,我们发现M-W对用盐的聚电解质溶液的集体动态发挥着至关重要的作用,而不是如先前假设的C-P / C-S比率。由于M-W逐渐减小,咸溶液从三种模式表现出动态转变为两种模式,然后到一种松弛模式。新的快速模式和动态转变的出现是在几十年中发育的普通非凡转变的一般前提下的标志。为了合理化我们的实验结果,我们通过解决聚电解质链的弛豫,来自聚合物的抗衡离子和加入盐的抗衡离子之间的耦合,以及来自盐的共同离子的耦合来提出一种具有盐的聚电解质溶液的集体动力学理论。预测与实验结果进行了定性协议。实验和理论的本组合工作构成了精确地表征咸溶液中带电大分子的动态的基础,这在生物系统和基于聚电解质的技术中普遍存在。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2019年第14期|5886-5896|共11页
  • 作者

    Jia Di; Muthukumar Murugappan;

  • 作者单位

    Univ Massachusetts Dept Polymer Sci & Engn Amherst MA 01003 USA;

    Univ Massachusetts Dept Polymer Sci & Engn Amherst MA 01003 USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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